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Stochastic Optimization for Coordinated Actuated Traffic Signal Systems

机译:协调驱动交通信号系统的随机优化

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摘要

Existing state-of-the-practice traffic signal timing-optimization programs rely on macroscopic and deterministic models to represent traffic flow, including coordinated actuated traffic signal systems. One distinct shortcoming of such an approach is its inability to account for the stochastic nature of traffic, such as the variability in traffic demand, driver behavior, vehicular interarrival times, vehicle mix, and so forth. In addition, the existing traffic signal timing-optimization programs for coordinated actuated traffic signal systems still focus on four basic traffic signal timing parameters (i.e., cycle length, green times or force-off points, offsets, and phase sequences). Studies have shown that actuated signal settings such as minimum green time, vehicle extension, and recall mode are also important parameters in traffic signal operations. This study presents the development of a stochastic-optimization method for coordinated actuated traffic signal systems. The proposed method accounts for stochastic variability by using a well-calibrated microscopic simulation model, CORSIM, instead of a macroscopic and deterministic model, and it simultaneously optimizes actuated signal settings and the four traffic signal timing parameters by adopting a genetic algorithm with special decoding schemes. The proposed method was applied to a real-world arterial network in Charlottesville, Virginia. The performance of the proposed method was compared with that of an existing traffic signal timing-optimization program, Synchro, using a well-calibrated microscopic simulation model, VISSIM. The results indicated that the proposed method outperforms the existing timing plan and the Synchro-optimized traffic signal timing for the tested arterial network.
机译:现有的实践状态交通信号灯定时优化程序依赖于宏观和确定性模型来表示交通流,包括协调的致动交通信号系统。这种方法的一个明显的缺点是它不能解决交通的随机性,例如交通需求的变化,驾驶员的行为,车辆到达时间,车辆混合等等。另外,用于协调的致动交通信号系统的现有交通信号定时优化程序仍然集中在四个基本交通信号定时参数(即,周期长度,绿灯时间或强制离开点,偏移和相位序列)上。研究表明,诸如最小绿灯时间,车辆扩展和召回模式之类的激励信号设置也是交通信号灯操作中的重要参数。这项研究提出了一种用于协调驱动交通信号系统的随机优化方法的开发。所提出的方法通过使用经过良好校准的微观仿真模型CORSIM代替宏观确定性模型来解决随机变异性,并且通过采用具有特殊解码方案的遗传算法来同时优化启动信号设置和四个交通信号定时参数。所提出的方法被应用于弗吉尼亚州夏洛茨维尔的现实世界中的动脉网络。使用经过良好校准的微观仿真模型VISSIM,将该方法的性能与现有交通信号定时优化程序Synchro的性能进行了比较。结果表明,所提出的方法优于现有的时序计划和经测试的动脉网络的同步优化交通信号时序。

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